Literature DB >> 27526288

Modeling phase transitions in mixtures of β-γ lens crystallins.

Miha Kastelic1, Yurij V Kalyuzhnyi, Vojko Vlachy.   

Abstract

We analyze the experimentally determined phase diagram of a γD-βB1 crystallin mixture. Proteins are described as dumbbells decorated with attractive sites to allow inter-particle interaction. We use thermodynamic perturbation theory to calculate the free energy of such mixtures and, by applying equilibrium conditions, also the compositions and concentrations of the co-existing phases. Initially we fit the Tcloudversus packing fraction η measurements for a pure (x2 = 0) γD solution in 0.1 M phosphate buffer at pH = 7.0. Another piece of experimental data, used to fix the model parameters, is the isotherm x2vs. η at T = 268.5 K, at the same pH and salt content. We use the conventional Lorentz-Berthelot mixing rules to describe cross interactions. This enables us to determine: (i) model parameters for pure βB1 crystallin protein and to calculate; (ii) complete equilibrium surface (Tcloud-x2-η) for the crystallin mixtures. (iii) We present the results for several isotherms, including the tie-lines, as also the temperature-packing fraction curves. Good agreement with the available experimental data is obtained. An interesting result of these calculations is evidence of the coexistence of three phases. This domain appears for the region of temperatures just out of the experimental range studied so far. The input parameters, leading good description of experimental data, revealed a large difference between the numbers of the attractive sites for γD and βB1 proteins. This interesting result may be related to the fact that γD has a more than nine times smaller quadrupole moment than its partner in the mixture.

Entities:  

Year:  2016        PMID: 27526288      PMCID: PMC5131804          DOI: 10.1039/c6sm01513a

Source DB:  PubMed          Journal:  Soft Matter        ISSN: 1744-683X            Impact factor:   3.679


  44 in total

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8.  Structural and biochemical characterization of the childhood cataract-associated R76S mutant of human γD-crystallin.

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5.  Theory for the Liquid-Liquid Phase Separation in Aqueous Antibody Solutions.

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6.  Valence, loop formation and universality in self-assembling patchy particles.

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Review 7.  The Protein Folding Problem: The Role of Theory.

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8.  Phase stability of aqueous mixtures of bovine serum albumin with low molecular mass salts in presence of polyethylene glycol.

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9.  Liquid-Liquid Phase Separation of Patchy Particles Illuminates Diverse Effects of Regulatory Components on Protein Droplet Formation.

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  9 in total

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